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Speech emotion recognition research: an analysis of research focus

机译:语音情感识别研究:研究重点分析

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摘要

This article analyses research in speech emotion recognition ("SER") from 2006 to 2017 in order to identify the current focus of research, and areas in which research is lacking. The objective is to examine what is being done in this field of research. Searching on selected keywords, we extracted and analysed 260 articles from well-known online databases. The analysis indicates that SER research is an active field of research, dozens of articles being published each year in journals and conference proceedings. The majority of articles concentrate on three critical aspects of SER, namely (1) databases, (2) suitable speech features, and (3) classification techniques to maximize the recognition accuracy of SER systems. Having carried out association analysis of the critical aspects and how they influence the performance of the SER system in term of recognition accuracy, we found that certain combination of databases, speech features and classifiers influence the recognition accuracy of the SER system. We have also suggested aspects of SER that could be taken into consideration in future works based on our review.
机译:本文分析了2006年至2017年的语音情感识别(“ SER”)研究,以便确定当前的研究重点以及缺少的研究领域。目的是检查在该研究领域中正在做什么。通过搜索选定的关键字,我们从著名的在线数据库中提取并分析了260篇文章。分析表明,SER研究是一个活跃的研究领域,每年在期刊和会议记录中发表数十篇文章。大多数文章集中在SER的三个关键方面,即(1)数据库,(2)合适的语音功能和(3)分类技术以最大化SER系统的识别准确性。在对关键方面进行了关联分析以及它们如何在识别精度方面影响SER系统的性能之后,我们发现数据库,语音特征和分类器的某些组合会影响SER系统的识别精度。我们还根据我们的建议,提出了SER的各个方面,可以在以后的工作中予以考虑。

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